Generation of a human iPSC-derived cardiomyocyte/fibroblast engineered heart tissue model [version 1; peer review: 1 approved, 2 approved with reservations]

Max Cumberland*, Jonas Euchner, Amar Azad, Nguyen T. N. Vo, Paulus Kirchhof, Andy Holmes, Chris Denning, Katja Gehmlich*

*Corresponding author for this work

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Abstract

Animal models have proven integral to broadening our understanding of complex cardiac diseases but have been hampered by significant species-dependent differences in cellular physiology. Human-induced pluripotent stem cell-derived cardiomyocytes (hiPSC-CMs) have shown great promise in the modelling of cardiac diseases despite limitations in functional and structural maturity. 3D stem cell-derived cardiac models represent a step towards mimicking the intricate microenvironment present in the heart as an in vitro model. Incorporation of non-myocyte cell types, such as cardiac fibroblasts, into engineered heart tissue models (EHTs) can help better recapitulate the cell-to-cell and cell-to-matrix interactions present in the human myocardium. Integration of human-induced pluripotent stem cell-derived cardiac fibroblasts (hiPSC-CFs) and hiPSC-CM into EHT models enables the generation of a genetically homogeneous modelling system capable of exploring the abstruse structural and electrophysiological interplay present in cardiac pathophysiology. Furthermore, the construction of more physiologically relevant 3D cardiac models offers great potential in the replacement of animals in heart disease research. Here we describe efficient and reproducible protocols for the differentiation of hiPSC-CMs and hiPSC-CFs and their subsequent assimilation into EHTs. The resultant EHT consists of longitudinally arranged iPSC-CMs, incorporated alongside hiPSC-CFs. EHTs with both hiPSC-CMs and hiPSC-CFs exhibit slower beating frequencies and enhanced contractile force compared to those composed of hiPSC-CMs alone. The modified protocol may help better characterise the interplay between different cell types in the myocardium and their contribution to structural remodelling and cardiac fibrosis.
Original languageEnglish
Article number1224
Number of pages22
JournalF1000Research
Volume12
DOIs
Publication statusPublished - 30 Jan 2024

Bibliographical note

Grant information:
MC is funded by a National Centre for the 3Rs/British Heart Foundation (BHF) studentship (NC/T001747/1) and an NC3Rs Early Career Engagement Award. Work in KG’s laboratory is supported by the MRC (MR/V009540/1) and the BHF (PG/19/45/34419). The Institute of Cardiovascular Sciences, University of Birmingham, has received an Accelerator Award by the British Heart Foundation (AA/18/2/34218). JE is funded by the Centre of Membrane Proteins and Receptors (COMPARE, Universities of Birmingham and Nottingham), and by the Academy of Medical Sciences (Grant APR2\1013) PK was partially supported by European Union AFFECT-AF (grant agreement 847770), and MAESTRIA (grant agreement 965286), British Heart Foundation (PG/17/30/32961; PG/20/22/35093; AA/18/2/34218), German Centre for Cardiovascular Research supported by the German Ministry of Education and Research (DZHK), Deutsche Forschungsgemeinschaft (Ki 509167694), and Leducq Foundation. AH is supported by the BHF (PG/17/30/32961; FS/PhD/20/29093).

Keywords

  • Engineered Heart Tissue (EHT)
  • 3D cardiac model
  • induced pluripotent stem cell derived cardiomyocytes (iPSC-CM)
  • induced pluripotent stem cell derived cardiac fibroblasts (iPSC-CF)
  • cardiac co-culture
  • cardiac fibrosis

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